神经康复
物理医学与康复
神经假体
脊髓损伤
皮质脊髓束
手腕
上肢
医学
康复
脊髓
神经科学
计算机科学
心理学
物理疗法
外科
磁共振弥散成像
磁共振成像
放射科
作者
Maria Pasquini,Nicholas D. James,Inssia Dewany,Florent-Valéry Coen,Newton Cho,Stefano Lai,Selin Anil,J. Carpaneto,Quentin Barraud,Stéphanie Lacour,Silvestro Micera,Grégoire Courtine
出处
期刊:Science robotics
[American Association for the Advancement of Science (AAAS)]
日期:2022-03-30
卷期号:7 (64)
被引量:4
标识
DOI:10.1126/scirobotics.abk2378
摘要
Numerous neurorehabilitative, neuroprosthetic, and repair interventions aim to address the consequences of upper limb impairments after neurological disorders. Although these therapies target widely different mechanisms, they share the common need for a preclinical platform that supports the development, assessment, and understanding of the therapy. Here, we introduce a neurorobotic platform for rats that meets these requirements. A four-degree-of-freedom end effector is interfaced with the rat's wrist, enabling unassisted to fully assisted execution of natural reaching and retrieval movements covering the entire body workspace. Multimodal recording capabilities permit precise quantification of upper limb movement recovery after spinal cord injury (SCI), which allowed us to uncover adaptations in corticospinal tract neuron dynamics underlying this recovery. Personalized movement assistance supported early neurorehabilitation that improved recovery after SCI. Last, the platform provided a well-controlled and practical environment to develop an implantable spinal cord neuroprosthesis that improved upper limb function after SCI.
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